US12237237B2 - Semiconductor module and manufacturing method therefor - Google Patents
Semiconductor module and manufacturing method therefor Download PDFInfo
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- US12237237B2 US12237237B2 US17/752,073 US202217752073A US12237237B2 US 12237237 B2 US12237237 B2 US 12237237B2 US 202217752073 A US202217752073 A US 202217752073A US 12237237 B2 US12237237 B2 US 12237237B2
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- terminal
- conductor
- peripheral edge
- protruding portion
- semiconductor module
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- H10W76/134—
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- H10W70/424—
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01L—SEMICONDUCTOR DEVICES NOT COVERED BY CLASS H10
- H01L23/00—Details of semiconductor or other solid state devices
- H01L23/02—Containers; Seals
- H01L23/04—Containers; Seals characterised by the shape of the container or parts, e.g. caps, walls
- H01L23/043—Containers; Seals characterised by the shape of the container or parts, e.g. caps, walls the container being a hollow construction and having a conductive base as a mounting as well as a lead for the semiconductor body
- H01L23/047—Containers; Seals characterised by the shape of the container or parts, e.g. caps, walls the container being a hollow construction and having a conductive base as a mounting as well as a lead for the semiconductor body the other leads being parallel to the base
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01L—SEMICONDUCTOR DEVICES NOT COVERED BY CLASS H10
- H01L21/00—Processes or apparatus adapted for the manufacture or treatment of semiconductor or solid state devices or of parts thereof
- H01L21/02—Manufacture or treatment of semiconductor devices or of parts thereof
- H01L21/04—Manufacture or treatment of semiconductor devices or of parts thereof the devices having potential barriers, e.g. a PN junction, depletion layer or carrier concentration layer
- H01L21/48—Manufacture or treatment of parts, e.g. containers, prior to assembly of the devices, using processes not provided for in a single one of the groups H01L21/18 - H01L21/326 or H10D48/04 - H10D48/07
- H01L21/4814—Conductive parts
- H01L21/4817—Conductive parts for containers, e.g. caps
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- H10W70/04—
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- H10W70/438—
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- H10W74/01—
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- H10W74/114—
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- H10W76/01—
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01L—SEMICONDUCTOR DEVICES NOT COVERED BY CLASS H10
- H01L23/00—Details of semiconductor or other solid state devices
- H01L23/02—Containers; Seals
- H01L23/04—Containers; Seals characterised by the shape of the container or parts, e.g. caps, walls
- H01L23/053—Containers; Seals characterised by the shape of the container or parts, e.g. caps, walls the container being a hollow construction and having an insulating or insulated base as a mounting for the semiconductor body
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- H—ELECTRICITY
- H01—ELECTRIC ELEMENTS
- H01L—SEMICONDUCTOR DEVICES NOT COVERED BY CLASS H10
- H01L24/00—Arrangements for connecting or disconnecting semiconductor or solid-state bodies; Methods or apparatus related thereto
- H01L24/01—Means for bonding being attached to, or being formed on, the surface to be connected, e.g. chip-to-package, die-attach, "first-level" interconnects; Manufacturing methods related thereto
- H01L24/26—Layer connectors, e.g. plate connectors, solder or adhesive layers; Manufacturing methods related thereto
- H01L24/28—Structure, shape, material or disposition of the layer connectors prior to the connecting process
- H01L24/29—Structure, shape, material or disposition of the layer connectors prior to the connecting process of an individual layer connector
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- H10W72/30—
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- H10W72/5366—
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- H10W72/5473—
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- H10W72/871—
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- H10W72/926—
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- H10W74/00—
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- H10W76/15—
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- H10W90/00—
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- H10W90/734—
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- H10W90/764—
Definitions
- the present disclosure relates to a semiconductor module and to a manufacturing method therefor.
- WO 2015/145752 discloses a semiconductor module including a plurality of terminals (lead frames) each having a planar shape and connected to a different semiconductor chip, an insulating sheet adhering to the terminals, and a resin sealing element to seal each of the terminals and the insulating sheet.
- the insulating sheet may separate from the resin sealing element.
- the insulating sheet separates from the resin sealing element, there is a possibility that electrical insulation between the terminals cannot be maintained in a configuration with insufficient creepage distance between the terminals.
- a sufficient creepage distance between the terminals enables electrical insulation between the terminals to be maintained.
- leaving sufficient creepage distance between the terminals leads to an increase in the size of the semiconductor module.
- one aspect of the present invention has an object of enabling provision of electrical insulation between terminals, but avoiding increase semiconductor module size.
- the insulating sheet includes an insulating portion layered between the first conductor portion and the second conductor portion, and a first protruding portion positioned between a tip portion of the first terminal portion and the second peripheral edge in plan view, the first protruding portion forming an angle relative to a surface of the first terminal portion.
- a manufacturing method for a semiconductor module includes: a first process; and a second process.
- the semiconductor module includes: a first semiconductor chip including a first main electrode; a second semiconductor chip including a second main electrode; a casing portion surrounding the first semiconductor chip and the second semiconductor chip; a first connection terminal electrically connected to the first main electrode; a second connection terminal electrically connected to the second main electrode; an insulating sheet with insulation properties; and a sealing element filled into an inner space of the casing portion.
- the first connection terminal includes a first conductor portion including a first peripheral edge and a first terminal portion extending from the first peripheral edge in plan view
- the second connection terminal includes a second conductor portion including a second peripheral edge.
- the insulating sheet includes an insulating portion layered between the first conductor portion and the second conductor portion; and a first protruding portion positioned between a tip portion of the first terminal portion and the second peripheral edge in plan view, the first protruding portion forming an angle relative to a surface of the first terminal portion.
- the first process bends the first protruding portion of the insulating sheet, and the second process fills the sealing element into an inner space of the casing portion after performing the first process.
- FIG. 1 is a plan view of a configuration of a semiconductor module according to a first embodiment
- FIG. 2 is a cross-sectional diagram taken along line a-a in FIG. 1 ;
- FIG. 3 is a plan view of a connection portion
- FIG. 4 is an enlarged cross-sectional diagram of the vicinity of a protruding portion
- FIG. 5 is a cross-sectional diagram illustrating a comparative example
- FIG. 6 is a process flowchart exemplifying a manufacturing method of the semiconductor module
- FIG. 7 is a cross-sectional diagram exemplifying a step in the middle of a manufacturing process
- FIG. 8 is a cross-sectional diagram exemplifying the step in the middle of the manufacturing process
- FIG. 9 is a plan view of a connection portion in a second embodiment
- FIG. 10 is an enlarged cross-sectional diagram of the vicinity of a protruding portion in the second embodiment
- FIG. 11 is a plan view of a connection portion in a third embodiment
- FIG. 12 is an enlarged cross-sectional diagram of the vicinity of a protruding portion in a fourth embodiment
- FIG. 13 is an enlarged cross-sectional diagram of the vicinity of a protruding portion in a modification of the fourth embodiment
- FIG. 14 is an enlarged cross-sectional diagram of the vicinity of a protruding portion in a modification.
- FIG. 15 is a cross-sectional diagram of a semiconductor module according to the modification.
- A-1 Structure of Semiconductor Module 100
- FIG. 1 is a plan view illustrating an example of the configuration of a semiconductor module 100 according to a first embodiment.
- FIG. 2 is a cross-sectional diagram taken along line a-a in FIG. 1 .
- the X-axis, the Y-axis, and the Z-axis are perpendicular to each other.
- One direction along the X-axis is denoted as an X1 direction, whereas the direction opposite to the X1 direction is denoted as an X2 direction.
- One direction along the Y-axis is denoted as a Y1 direction, whereas the direction opposite to the Y1 direction is denoted as a Y2 direction.
- Z1 direction one direction along the Z-axis
- Z2 direction the direction opposite to the Z1 direction
- viewing any of the elements of the semiconductor module 100 along the Z-axis direction is represented as a “plan view.”
- the semiconductor module 100 can be installed in any direction when in practical use.
- the Z1 direction is assumed to be an upward direction
- the Z2 direction is assumed to be a downward direction for the sake of convenience. Therefore, a surface of any element of the semiconductor module 100 , which faces in the Z1 direction, is sometimes referred to as “topside,” and another surface of the element, which faces in the Z2 direction, is sometimes referred to as “underside.”
- a virtual plane hereinafter, referred to as “reference plane” R is assumed in the description below, which is parallel to the Y-Z plane.
- the reference plane R is positioned at the center of the semiconductor module 100 in the X-axis direction. That is, the reference plane R divides the semiconductor module 100 into two equal parts in the X-axis direction.
- the semiconductor module 100 includes a semiconductor unit 10 , a casing portion 20 , a base portion 30 , a sealing element 40 , and a connector 50 .
- a semiconductor unit 10 the semiconductor unit 10
- a casing portion 20 the semiconductor unit 10
- a base portion 30 the semiconductor unit 10
- a sealing element 40 the sealing element 40
- a connector 50 the connector 50
- FIG. 1 illustrations of the base portion 30 and the sealing element 40 are omitted for convenience.
- the base portion 30 is a structure that supports the semiconductor unit 10 and the casing portion 20 .
- the base portion 30 is made of a conductive material such as aluminum or copper.
- the base portion 30 is used as a heatsink.
- the base portion 30 may also be a cooler that cools the semiconductor unit 10 , such as a fin or a water-cooling jacket.
- the base portion 30 may be used as a ground that is set at the ground potential.
- the casing portion 20 is a structure in which the semiconductor unit 10 is accommodated. Specifically, the casing portion 20 is formed into a rectangular frame shape surrounding the semiconductor unit 10 . As exemplified in FIG. 2 , the semiconductor unit 10 is accommodated in the space surrounded by the casing portion 20 and the base portion 30 at the bottom.
- the sealing element 40 is filled into the inner space of the casing portion 20 to seal the semiconductor unit 10 .
- the sealing element 40 is made of a resin material such as epoxy resin, silicone gel, or other kinds of resin.
- a silicon oxide filler, an aluminum oxide filler, or other kinds of filler may be contained in the sealing element 40 .
- the semiconductor unit 10 includes a layered substrate 11 , a semiconductor chip 12 p , a semiconductor chip 12 n , a wiring portion 13 p , a wiring portion 13 n , a connection conductor 14 p , a connection conductor 14 n , and a connection conductor 14 o .
- elements associated with the semiconductor chip 12 p are denoted by reference numerals added with an ending “p,” whereas elements associated with the semiconductor chip 12 n are denoted by reference numerals added with an ending “n.”
- the semiconductor chip 12 p and the semiconductor chip 12 n do not need to be particularly distinguished from each other (that is, when the description applies to both of them), the semiconductor chip 12 p and the semiconductor chip 12 n are simply referred to as “semiconductor chips 12 .” The same applies to the other elements.
- the layered substrate 11 is a plate-like member that supports each of the semiconductor chips 12 ( 12 p and 12 n ), each of wiring portions 13 ( 13 p and 13 n ), and each of connection conductors 14 ( 14 p , 14 n , and 14 o ).
- a layered ceramic substrate such as a DCB (Direct Copper Bonding) substrate or an AMB (Active Metal Brazing) substrate, or a metal-based substrate including a resin insulating layer is used as the layered substrate 11 .
- the layered substrate 11 is made up of layers of an insulating substrate 112 , a metal layer 113 , and conductor patterns 114 ( 114 a , 114 b , and 114 c ).
- the insulating substrate 112 is a rectangular plate-like member made of an insulating material.
- the insulating substrate 112 can be made of any insulating material, a ceramic material such as alumina (Al 2 O 3 ), aluminum nitride (AIN), or silicon nitride (Si 3 N 4 ), or a resin material such as epoxy resin is used.
- the reference plane R is also expressed as a plane that divides the insulating substrate 112 into two equal parts in the X-axis direction.
- the metal layer 113 is a conductive film formed on the underside of the insulating substrate 112 opposed to the base portion 30 .
- the metal layer 113 is formed over the entire area of the underside of the insulating substrate 112 , or a portion of the underside of the insulating substrate 112 (for example, the area excluding the edge portion).
- the underside of the metal layer 113 is in contact with the topside of the base portion 30 .
- the metal layer 113 is made of a metal material with high thermal conductivity, such as copper or aluminum.
- the conductor patterns 114 are conductive films formed spaced apart from one another on the topside of the insulating substrate 112 , which is on the opposite side to the base portion 30 .
- Each of the conductor patterns 114 is made of a low-resistance conductive material, such as copper or copper alloy.
- the conductor pattern 114 a is a rectangular conductive film formed on the topside of the insulating substrate 112 in the area in the X1 direction when viewed from the reference plane R.
- the conductor pattern 114 b is a rectangular conductive film formed on the topside of the insulating substrate 112 in the area in the X2 direction when viewed from the reference plane R.
- the conductor pattern 114 c is a conductive film formed in the Y1 direction when viewed from the conductor patterns 114 a and 114 b .
- the conductor pattern 114 c is formed into a planar shape including an area positioned in the Y1 direction relative to the conductor pattern 114 a , and an area positioned in the Y1 direction relative to the conductor pattern 114 b.
- the semiconductor chips 12 are power semiconductor devices capable of high-current switching.
- each of the semiconductor chips 12 may include a transistor such as an IGBT (Insulated Gate Bipolar Transistor) or a MOSFET (Metal-Oxide-Semiconductor Field-Effect Transistor), an RC-IGBT (Reverse Conducting IGBT), an FWD (Freewheeling Diode), or the like.
- IGBT Insulated Gate Bipolar Transistor
- MOSFET Metal-Oxide-Semiconductor Field-Effect Transistor
- RC-IGBT Reverse Conducting IGBT
- FWD Freewheeling Diode
- Each of the semiconductor chips 12 includes a main electrode E, a main electrode C, and a control electrode G.
- a current to be controlled is input into or output from the main electrode E and the main electrode C.
- the main electrode E is an emitter electrode formed on the topside of the semiconductor chip 12
- the main electrode C is a collector electrode formed on the underside of the semiconductor chip 12 .
- the main electrode C also functions as an anode electrode of an FWD portion.
- the main electrode E also functions as a cathode electrode of the FWD portion.
- the control electrode G is a gate electrode formed on the topside of the semiconductor chip 12 , and applied with a voltage for controlling the semiconductor chip 12 to turn ON and OFF.
- the control electrode G may include a detection electrode to be used for current detection, temperature detection, or other detection.
- the semiconductor chip 12 n is an example of a “first semiconductor chip,” and the main electrode E of the semiconductor chip 12 n is an example of a “first main electrode.”
- the semiconductor chip 12 p is an example of a “second semiconductor chip,” and the main electrode C of the semiconductor chip 12 p is an example of a “second main electrode.”
- the semiconductor chips 12 are joined to the layered substrate 11 by using a joining member 15 such as one of solder.
- a joining member 15 such as one of solder.
- the semiconductor chip 12 p is joined to the conductor pattern 114 a . That is, the main electrode C of the semiconductor chip 12 p is joined to the conductor pattern 114 a .
- the semiconductor chip 12 n is joined to the conductor pattern 114 c of the layered substrate 11 . That is, the main electrode C of the semiconductor chip 12 n is joined to the conductor pattern 114 c.
- the wiring portion 13 p in FIG. 1 is a wire that electrically connects the main electrode E of the semiconductor chip 12 p and the conductor pattern 114 c .
- the wiring portion 13 p extends in the Y-axis direction.
- One end portion of the wiring portion 13 p which is positioned in the Y2 direction, is joined to the main electrode E of the semiconductor chip 12 p .
- the other end portion of the wiring portion 13 p which is positioned in the Y1 direction, is joined to the conductor pattern 114 c .
- the wiring portion 13 n is a wire that electrically connects the main electrode E of the semiconductor chip 12 n and the conductor pattern 114 b .
- the wiring portion 13 n extends in the Y-axis direction.
- the wiring portions 13 p and 13 n are lead frames made of a low-resistance conductive material such as copper or copper alloy.
- connection conductors 14 are made of a low-resistance conductive material such as copper or copper alloy.
- the connection conductor 14 p electrically connects the semiconductor chip 12 p to an external device (not illustrated).
- the connection conductor 14 p is joined to the surface of the conductor pattern 114 a by using a joining member (not illustrated) such as one of solder. That is, the connection conductor 14 p is electrically connected to the main electrode C of the semiconductor chip 12 p through the conductor pattern 114 a .
- the connection conductor 14 p is positioned in the Y2 direction when viewed from the semiconductor chip 12 p and the wiring portion 13 p .
- the semiconductor chip 12 p , the wiring portion 13 p , and the connection conductor 14 p are installed in the space in the X1 direction when viewed from the reference plane R.
- connection conductor 14 n electrically connects the semiconductor chip 12 n to the external device. Specifically, the connection conductor 14 n is joined to the surface of the conductor pattern 114 b by way of a joining member (not illustrated) such as one of solder. That is, the connection conductor 14 n is electrically connected to the main electrode E of the semiconductor chip 12 n through the conductor pattern 114 b and the wiring portion 13 n .
- the connection conductor 14 n is positioned in the Y2 direction when viewed from the semiconductor chip 12 n and the wiring portion 13 n .
- connection conductor 14 n As will be understood from the above explanation, the semiconductor chip 12 n , the wiring portion 13 n , and the connection conductor 14 n are installed in the space in the X2 direction when viewed from the reference plane R.
- the connection conductors 14 p and 14 n are arrayed in the X-axis direction and are spaced apart from each other.
- the connection conductor 14 n according to the first embodiment is an example of a “first connection conductor.”
- connection conductor 14 o electrically connects the conductor pattern 114 c to the external device. Specifically, the connection conductor 14 o is joined to the surface of the conductor pattern 114 c by way of a joining member (not illustrated) such as one of solder. That is, the connection conductor 14 o is electrically connected to the main electrode E of the semiconductor chip 12 p through the conductor pattern 114 c and the wiring portion 13 p , while being electrically connected to the main electrode C of the semiconductor chip 12 n through the conductor pattern 114 c.
- a joining member such as one of solder
- each of the connection conductors 14 p , 14 n , and 14 o is a columnar structure protruding from the layered substrate 11 in the Z1 direction.
- Each of the connection conductors 14 has a rectangular shape when viewed in plan. That is, each of the connection conductors 14 according to the first embodiment is a cuboid.
- the top face of the connection conductor 14 p , the top face of the connection conductor 14 n , and the top face of the connection conductor 14 o are positioned higher than the other elements of the semiconductor unit 10 . That is, in the Z-axis direction, the top face of each connection conductor 14 is positioned in the Z1 direction relative to the layered substrate 11 , the respective wiring portion 13 , and the respective semiconductor chip 12 .
- the casing portion 20 in FIG. 1 is a frame-shaped structure that surrounds the semiconductor unit 10 .
- the underside of the casing portion 20 is joined to the edge portion of the topside of the base portion 30 by, for example, using an adhesive.
- the semiconductor unit 10 is accommodated in the casing portion 20 with the side of the layered substrate 11 (the insulating substrate 112 ) spaced apart from, and opposed to, the inner wall surface of the casing portion 20 .
- the inner wall surface of the casing portion 20 is a wall surface (inner peripheral surface) that faces toward the center of the casing portion 20 in plan view.
- the casing portion 20 is made of a resin material such as PPS (polyphenylene sulfide) resin, PBT (polybutylene terephthalate) resin, PBS (poly butylene succinate) resin, PA (polyamide) resin, or ABS (acrylonitrile-butadiene-styrene) resin, or other kinds of resin materials.
- a filler made of an insulating material may be contained in the casing portion 20 .
- the casing portion 20 is a rectangular frame-shaped structure having a side wall 21 , a side wall 22 , a side wall 23 , and a side wall 24 connected with each other in the described order.
- the side walls 21 and 23 are wall portions extending in the Y-axis direction at a predetermined spacing from each other in the X-axis direction.
- the side walls 22 and 24 are wall portions extending in the X-axis direction at a predetermined spacing from each other in the Y-axis direction.
- the side walls 22 and 24 are shaped so as to connect the respective end portions of the side walls 21 and 23 with each other.
- the connection conductors 14 p and 14 n in the semiconductor unit 10 are arrayed parallel to the side wall 22 at a position away from the inner wall surface of the side wall 22 in the Y1 direction, and are spaced apart from each other.
- a primer film 25 is formed on the inner wall surface of the casing portion 20 .
- the primer film 25 is a coating that coats the inner wall surface of the casing portion 20 .
- the primer film 25 functions as a primer to improve the adhesion between the inner wall surface of the casing portion 20 and the sealing element 40 .
- the primer film 25 is made of an appropriate resin material in accordance with the material of the casing portion 20 and the material of the sealing element 40 .
- the primer film 25 is made of, for example, a silane coupling agent.
- the primer film 25 may be made of polyimide resin, polyamide-imide resin, polyamide resin, or modifications thereof. In FIG. 1 , illustration of the primer film 25 is omitted for convenience.
- connection terminal 26 and control terminals 27 are installed on the side wall 24 of the casing portion 20 .
- the connection terminal 26 is a plate-like conductor penetrating through the side wall 24 in the Y-axis direction. A portion of the connection terminal 26 , protruding from the inner wall surface of the side wall 24 , is joined to the top face of the connection conductor 14 o .
- connection terminal 26 is electrically connected to the main electrode E of the semiconductor chip 12 p through the connection conductor 14 o , the conductor pattern 114 c , and the wiring portion 13 p , while being electrically connected to the main electrode C of the semiconductor chip 12 n through the connection conductor 14 o and the conductor pattern 114 c .
- the connection terminal 26 is an output terminal ( 0 terminal) to electrically connect each of the semiconductor chips 12 ( 12 p and 12 n ) to the external device.
- the control terminals 27 are lead terminals to electrically connect the control electrode G of each of the semiconductor chips 12 to the external device. Each of the control terminals 27 is electrically connected to the control electrode G of each of the semiconductor chips 12 ( 12 p and 12 n ) by, for example, wires 28 .
- the control terminals 27 , the connection terminal 26 , and the connector 50 described above are formed as one piece with the casing portion 20 by, for example, insert molding.
- the connector 50 is a terminal to electrically connect the semiconductor unit 10 to the external device.
- the connector 50 is made up of layers of a connection terminal 51 p , an insulating sheet 52 , and a connection terminal 51 n .
- Connection terminals 51 are thin plate-like electrodes made of a low-resistance conductive material such as copper or copper alloy.
- Each of the connection terminals 51 may be coated with a conductive material such as nickel or nickel alloy.
- connection terminals 51 p and 51 n may have a thickness, for example, equal to or greater than 0.2 mm, and equal to or less than 2.5 mm. In a preferred aspect, the connection terminals 51 p and 51 n have an equivalent thickness.
- the description “the dimension “a” and the dimension “b” are “equivalent to each other” (a ⁇ b)” includes the case in which the dimension “a” and the dimension “b” perfectly correspond with each other, and additionally includes cases in which the dimension “a” and the dimension “b” substantially correspond to each other.
- the case in which “the dimension “a” and the dimension “b” substantially correspond to each other” refers to a case in which, for example, the difference between the dimension “a” and the dimension “b” falls within the range of manufacturing error.
- the case in which the ratio of the dimension “b” to the dimension “a” is equal to or greater than 90% and equal to or less than 110% (more preferably, equal to or greater than 95% and equal to or less than 105%) is construed to be the dimension “a” and the dimension “b” being “equivalent to each other.”
- the insulating sheet 52 is a thick film or a thin film made of an insulating material and having insulation properties.
- insulating paper is preferably used as the insulating sheet 52 .
- the insulating sheet 52 may have a thickness equal to or greater than 0.05 mm, and equal to or less than 2.5 mm.
- connection terminal 51 p the connection terminal 51 p , the insulating sheet 52 , and the connection terminal 51 n are layered in the described order from the top in the Z2 direction.
- the insulating sheet 52 is layered between the connection terminal 51 p and the connection terminal 51 n .
- the connection terminal 51 p is positioned in the Z1 direction relative to the insulating sheet 52 .
- the connection terminal 51 n is positioned in the Z2 direction relative to the insulating sheet 52 .
- the connection terminal 51 p adheres to the topside of the insulating sheet 52
- connection terminal 51 n adheres to the underside of the insulating sheet 52 .
- connection terminal 51 p is a positive input terminal (P terminal) to electrically connect the semiconductor chip 12 p to the external device.
- the connection terminal 51 n is a negative input terminal (N terminal) to electrically connect the semiconductor chip 12 n to the external device. That is, the connection terminal 51 p has a higher applied voltage as compared to the connection terminal 51 n .
- the connection terminals 51 p and 51 n are electrically insulated from each other by the insulating sheet 52 . In the configuration as described above in which the connection terminals 51 p and 51 n are opposed to each other with the insulating sheet 52 sandwiched therebetween, induction components associated with the current path of the semiconductor module 100 are reduced.
- the connection terminal 51 n is an example of a “first connection terminal,” whereas the connection terminal 51 p is an example of a “second connection terminal.”
- the connection terminal 51 p includes a conductor portion 511 p and a terminal portion 512 p .
- the conductor portion 511 p is a rectangular portion including a peripheral edge Ep 1 and a peripheral edge Ep 2 .
- the peripheral edge Ep 1 is an edge of the conductor portion 511 p positioned in the Y1 direction.
- the peripheral edge Ep 2 is an edge of the conductor portion 511 p positioned on the opposite side (in the Y2 direction) to the peripheral edge Ep 1 .
- the peripheries Ep 1 and Ep 2 both extend in the X-axis direction.
- the terminal portion 512 p is a rectangular portion extending in the Y1 direction from the peripheral edge Ep 1 of the conductor portion 511 p .
- the terminal portion 512 p continues from a part of the conductor portion 511 p positioned in the X1 direction relative to the reference plane R.
- the terminal portion 512 p is also expressed as a portion with a transverse width narrower than that of the conductor portion 511 p .
- the terminal portion 512 p has a transverse width narrower than half the transverse width of the conductor portion 511 p .
- the term “transverse width” refers to the dimension in the X-axis direction.
- the conductor portion 511 p is an example of a “second conductor portion.”
- the peripheral edge Ep 1 is an example of a “second peripheral edge.”
- the connection terminal 51 n includes a conductor portion 511 n and a terminal portion 512 n .
- the conductor portion 511 n is a rectangular portion including a peripheral edge En 1 and a peripheral edge En 2 .
- the peripheral edge En 1 is an edge of the conductor portion 511 n positioned in the Y1 direction.
- the peripheral edge En 2 is an edge of the conductor portion 511 n positioned on the opposite side (in the Y2 direction) to the peripheral edge En 1 .
- the peripheries En 1 and En 2 both extend in the X-axis direction.
- the terminal portion 512 n is a rectangular portion extending in the Y1 direction from the peripheral edge En 1 of the conductor portion 511 n . Specifically, the terminal portion 512 n continues from a part of the conductor portion 511 n positioned in the X2 direction relative to the reference plane R.
- the terminal portion 512 n is also expressed as a portion with a transverse width (the dimension in the X-axis direction) narrower than that of the conductor portion 511 n . Specifically, the terminal portion 512 n has a transverse width narrower than half the transverse width of the conductor portion 511 n .
- the conductor portion 511 n is an example of a “first conductor portion.”
- the terminal portion 512 n is an example of a “first terminal portion.”
- the peripheral edge En 1 of the conductor portion 511 n is an example of a “first peripheral edge.”
- the peripheral edge Ep 1 of the connection terminal 51 p is aligned with the peripheral edge En 1 of the connection terminal 51 n in the Y-axis direction.
- the peripheries Ep 1 and En 1 may be at different positions with each other in the Y-axis direction.
- the X-axis direction is also expressed as a direction extending along the peripheral edge Ep 1 or the peripheral edge En 1 .
- the X-axis direction is an example of a “first direction.”
- the conductor portions 511 p and 511 n overlap one over the other in plan view. Specifically, at least a part of the conductor portion 511 p and at least a part of the conductor portion 511 n overlap one over the other in plan view. More specifically, the transverse width of the conductor portion 511 p is equivalent to the transverse width of the conductor portion 511 n .
- the conductor portions 511 p and 511 n are arranged at the same position in the X-axis direction. On the other hand, the terminal portions 512 p and 512 n do not overlap one over the other in plan view.
- the terminal portion 512 p is positioned in the X1 direction relative to the reference plane R in plan view
- the terminal portion 512 n is positioned in the X2 direction relative to the reference plane R in plan view.
- the reference plane R includes the center line of each of the conductor portions 511 p and 511 n in their width directions. Therefore, the terminal portions 512 p and 512 n are positioned on opposite sides to each other with the center line sandwiched therebetween.
- the conductor portions 511 p and 511 n overlap one over the other, so that the induction components associated with the current path of the semiconductor module 100 are reduced as described above.
- electrical insulation is enabled between the terminal portions 512 p and 512 n.
- FIG. 3 is a plan view of the connector 50 .
- the insulating sheet 52 includes a main body portion 520 and a protruding portion 521 .
- the main body portion 520 is a rectangular portion including a peripheral edge e 1 and a peripheral edge e 2 .
- the peripheral edge e 1 is an edge of the main body portion 520 positioned in the Y1 direction.
- the peripheral edge e 2 is an edge of the main body portion 520 positioned on the opposite side (in the Y2 direction) to the peripheral edge e 1 .
- the peripheries e 1 and e 2 both extend in the X-axis direction.
- the main body portion 520 of the insulating sheet 52 has a transverse width (that is, the dimension in the X-axis direction) greater than the transverse width of each of the connection terminals 51 p and 51 n .
- the connection terminals 51 p and 51 n are positioned within the range of transverse width of the main body portion 520 .
- the main body portion 520 includes an insulating portion 525 and a peripheral edge portion 526 .
- the insulating portion 525 is a rectangular portion layered between the conductor portion 511 p of the connection terminal 51 p and the conductor portion 511 n of the connection terminal 51 n . Specifically, the insulating portion 525 overlaps the conductor portion 511 p of the connection terminal 51 p in plan view.
- the peripheral edge portion 526 is a portion that continues from the insulating portion 525 in a flush manner.
- the peripheral edge portion 526 surrounds the insulating portion 525 .
- the peripheral edge portion 526 according to the first embodiment surrounds the insulating portion 525 over its entire peripheral edge.
- the peripheral edge e 1 of the main body portion 520 of the insulating sheet 52 is positioned between the peripheral edge Ep 1 of the conductor portion 511 p of the connection terminal 51 p and a tip portion 513 p of the terminal portion 512 p .
- the peripheral edge e 1 is also positioned between the peripheral edge En 1 of the conductor portion 511 n of the connection terminal 51 n and a tip portion 513 n of the terminal portion 512 n . Therefore, as exemplified in FIGS. 1 and 3 , a part of the terminal portion 512 p of the connection terminal 51 p , positioned closer to the tip portion 513 p , protrudes from the peripheral edge e 1 of the insulating sheet 52 in the Y1 direction.
- Tip portions 513 of terminal portions 512 each are, of the respective terminal portion 512 , a peripheral edge positioned in the Y1 direction.
- Each of the tip portions 513 is also expressed as a portion that is furthest away from the peripheral edge e 1 of the insulating sheet 52 in the Y1 direction.
- the peripheral edge e 2 of the main body portion 520 is positioned between the peripheral edge Ep 2 of the conductor portion 511 p of the connection terminal 51 p and the peripheral edge En 2 of the conductor portion 511 n of the connection terminal 51 n .
- the peripheral edge Ep 2 of the conductor portion 511 p is positioned in the Y1 direction relative to the peripheral edge e 2 of the main body portion 520 .
- the peripheral edge En 2 of the conductor portion 511 n is positioned in the Y2 direction relative to the peripheral edge e 2 of the main body portion 520 .
- a part of the main body portion 520 extending along the peripheral edge e 2 of the main body portion 520 extends beyond the peripheral edge Ep 2 of the conductor portion 511 p in the Y2 direction. Also, a part of the conductor portion 511 n lying along the peripheral edge En 2 extends beyond the peripheral edge e 2 of the main body portion 520 in the Y2 direction.
- the connector 50 penetrates through the side wall 22 of the casing portion 20 in the Y-axis direction.
- the area, including a part of the conductor portion 511 p of the connection terminal 51 p , positioned closer to the peripheral edge Ep 1 , and also including the entire part of the terminal portion 512 p protrudes from the inner wall surface of the side wall 22 in the Y1 direction.
- the area including a part of the conductor portion 511 n of the connection terminal 51 n , positioned closer to the peripheral edge En 1 , and also including the entire part of the terminal portion 512 n , protrudes from the inner wall surface of the side wall 22 in the Y1 direction.
- the terminal portion 512 p and the peripheral edge Ep 1 of the connection terminal 51 p , as well as the terminal portion 512 n and the peripheral edge Ent of the connection terminal 51 n are sealed by the sealing element 40 in the inner space of the casing portion 20 . Therefore, the spacing Wa described above is positioned outside the casing portion 20 , whereas the spacing Wb described above is positioned inside the casing portion 20 .
- the casing portion 20 can be reduced in size compared to the configuration in which the spacing Wb is equal to or greater than the spacing Wa.
- the inner space of the casing portion 20 is filled with the sealing element 40 , electrical insulation between the connection terminals 51 p and 51 n is still possible even in the configuration in which the spacing Wb is smaller than the spacing Wa.
- FIG. 3 illustrates the outline shape of the connection conductors 14 ( 14 p and 14 n ) by the dotted-dashed line.
- the terminal portion 512 p of the connection terminal 51 p which extends in the Y1 direction from the peripheral edge e 1 of the insulating sheet 52 , overlaps the connection conductor 14 p in plan view.
- the terminal portion 512 p is joined to the topside of the connection conductor 14 p by, for example, laser welding. That is, the connection terminal 51 p is electrically connected to the main electrode C of the semiconductor chip 12 p through the connection conductor 14 p and the conductor pattern 114 a.
- connection terminal 51 n which extends in the Y1 direction from the peripheral edge e 1 of the insulating sheet 52 , overlaps the connection conductor 14 n in plan view.
- the terminal portion 512 n is joined to the topside of the connection conductor 14 n by, for example, laser welding. That is, the connection terminal 51 n is electrically connected to the main electrode E of the semiconductor chip 12 n through the connection conductor 14 n , the conductor pattern 114 b , and the wiring portion 13 n.
- the protruding portion 521 of the insulating sheet 52 continues from the main body portion 520 , and the protruding portion 521 and the main body portion 520 comprise a single piece.
- the protruding portion 521 according to the first embodiment is a rectangular portion extending in the Y1 direction from the peripheral edge e 1 of the main body portion 520 .
- the protruding portion 521 continues from, of the main body portion 520 , a part positioned in the X2 direction relative to the reference plane R.
- the protruding portion 521 has a transverse width in the X-axis direction (the dimension of a range ⁇ 1 ) narrower than the transverse width of the main body portion 520 .
- the protruding portion 521 has a transverse width narrower than half the transverse width of the main body portion 520 .
- a base end portion 521 b illustrated in FIG. 3 is, of the protruding portion 521 , a part positioned in the vicinity of the boundary (the peripheral edge e 1 ) between the protruding portion 521 and the main body portion 520 .
- a tip portion 521 a is the end of the protruding portion 521 on the opposite side to the base end portion 521 b .
- the protruding portion 521 is an example of a “first protruding portion.”
- FIG. 4 is an enlarged cross-sectional diagram of the semiconductor module 100 , illustrating the vicinity of the protruding portion 521 .
- FIG. 4 illustrates the connector 50 in cross-section taken along a line b-b in FIG. 3 .
- the protruding portion 521 forms an angle ⁇ relative to the topside of the terminal portion 512 n . That is, the protruding portion 521 is inclined relative to (or perpendicular to) the topside of the terminal portion 512 n , such that the tip portion 521 a is positioned in the Z1 direction relative to the base end portion 521 b . That is, the protruding portion 521 protrudes upward (for example, vertically or obliquely upward) from the topside of the terminal portion 512 n.
- the angle ⁇ is a numerical value ranging from, for example, 45° to 135°, and is more preferably a numerical value ranging from, for example, 60° to 120°. Even more preferably, the angle ⁇ is a numerical value ranging from, for example, 80° to 100°, and is set to, for example, 90°.
- the angle ⁇ is also expressed as an angle of the protruding portion 521 relative to the main body portion 520 (the insulating portion 525 and the peripheral edge portion 526 ).
- the angle ⁇ between the main body portion 520 and the protruding portion 521 is formed by bending the insulating sheet 52 at the boundary extending along the peripheral edge e 1 of the main body portion 520 .
- the protruding portion 521 continues from the main body portion 520 of the insulating sheet 52 , the protruding portion 521 , and the main body portion comprising a single piece.
- the main body portion 520 is an example of “another portion of the insulating sheet.”
- the protruding portion 521 protrudes upward from the terminal portion 512 n or from the main body portion 520 . Therefore, as will be understood from FIGS. 2 and 4 , the protruding portion 521 is positioned between the connection terminal 51 n (the terminal portion 512 n ) and a surface F of the sealing element 40 . That is, in the first embodiment, the protruding portion 521 extends from the topside of the terminal portion 512 n toward the surface F of the sealing element 40 . As exemplified in FIGS. 2 and 4 , the tip portion 521 a of the protruding portion 521 protrudes from the surface F of the sealing element 40 . That is, the tip portion 521 a is exposed from the sealing element 40 . According to the above form, for example, a worker can easily perform visual inspection from the outside of the sealing element 40 to confirm that the protruding portion 521 is properly formed.
- the protruding portion 521 is positioned between the tip portion 513 n of the terminal portion 512 n and the peripheral edge Ep 1 of the connection terminal 51 p in plan view. That is, both the tip portion 521 a and the base end portion 521 b of the protruding portion 521 are positioned between the tip portion 513 n and the peripheral edge Ep 1 in plan view.
- the protruding portion 521 does not overlap the connection conductor 14 n in plan view. That is, both the tip portion 521 a and the base end portion 521 b of the protruding portion 521 are positioned in the Y2 direction when viewed from the connection conductor 14 n.
- the protruding portion 521 is connected with the insulating portion 525 through the peripheral edge portion 526 . That is, the peripheral edge portion 526 is positioned between the protruding portion 521 and the insulating portion 525 in plan view.
- the peripheral edge portion 526 corresponds to a portion connecting the protruding portion 521 and the insulating portion 525 together (i.e., the peripheral edge portion 526 is a connecting portion).
- the protruding portion 521 protrudes upward from the position (the base end portion 521 b ) away from the peripheral edge Ep 1 of the connection terminal 51 p by a width dimension (the dimension in the Y-axis direction) w of the peripheral edge portion 526 in the Y1 direction.
- the insulating sheet 52 may separate from the sealing element 40 in some cases, such separation being caused by residual stress in the insulating sheet 52 or the sealing element 40 , thermal stress due to a difference in linear expansion coefficient between the insulating sheet 52 and the sealing element 40 , or due to other stress. According to the first embodiment, even when the insulating sheet 52 separates from the sealing element 40 , sufficient creepage distance between the terminal portion 512 n and the connection terminal 51 p can still remain. The above effects are described below in detail.
- FIG. 5 is a cross-sectional diagram illustrating a form to be compared to the first embodiment (hereinafter, referred to as “comparative example”).
- the comparative example omits the protruding portion 521 according to the first embodiment.
- the creepage distance between the terminal portion 512 n and the connection terminal 51 p is a sum of the value of a dimension w of the peripheral edge portion 526 of the insulating sheet 52 extending beyond the connection terminal 51 p , and the value of thickness of the insulating sheet 52 .
- no sufficient creepage distance remains between the connection terminal 51 p and the terminal portion 512 n . Consequently, there is a possibility of insufficient electrical insulation between the connection terminals 51 p and 51 n.
- the protruding portion 521 that forms the angle ⁇ relative to the terminal portion 512 n is positioned between the tip portion 513 n of the terminal portion 512 n and the peripheral edge Ep 1 of the connection terminal 51 p in plan view. Therefore, when the insulating sheet 52 separates from the sealing element 40 , the creepage distance between the terminal portion 512 n and the connection terminal 51 p is a sum of the value of dimension w of the peripheral edge portion 526 of the insulating sheet 52 , and the value of approximately twice the extension length L of the protruding portion 521 , as will be understood from FIG. 4 .
- the first embodiment has an advantage that electrical insulation between the connection terminals 51 p and 51 n can be effectively maintained.
- the dimension w of the peripheral edge portion 526 , and the extension length L of the protruding portion 521 are set in such a manner that, when the sealing element 40 is not in contact with the insulating sheet 52 , the creepage distance between the connection terminal 51 p and the terminal portion 512 n is equal to or greater than the creepage distance Wa between the connection terminals 51 p and 51 n on the outside of the casing portion 20 .
- the protruding portion 521 which forms the angle ⁇ relative to the terminal portion 512 n , enables a sufficient creepage distance between the terminal portion 512 n and the connection terminal 51 p to remain, so that the casing portion 20 is reduced in size in the Y-axis direction as compared to in the comparative example.
- electrical insulation between the connection terminals 51 p and 51 n can be maintained, whereas an increase in the size of the semiconductor module 100 is still reduced or avoided.
- the range ⁇ 1 of the protruding portion 521 in the X-axis direction includes a range and of the terminal portion 512 n in the X-axis direction. That is, the range ⁇ 1 is wider than the range ⁇ n 1 , and each end of the range ⁇ n 1 is within the range ⁇ 1 .
- the configuration described above facilitates sufficient creepage distance to remain between the terminal portion 512 n and the connection terminal 51 p , as compared to the configuration in which the range ⁇ n 1 of the terminal portion 512 n is partially outside the range ⁇ 1 of the protruding portion 521 . Accordingly, electrical insulation between the connection terminals 51 p and 51 n can be maintained effectively.
- the range ⁇ 1 of the protruding portion 521 in the X-axis direction further includes a range ⁇ n 2 of the connection conductor 14 n in the X-axis direction. That is, the range ⁇ 1 is greater than the range ⁇ n 2 , and each end of the range ⁇ n 2 is positioned within the range ⁇ 1 .
- the configuration described above facilitates sufficient creepage distance to remain between the connection conductor 14 n and the connection terminal 51 p , as compared to the configuration in which the range ⁇ n 2 of the connection conductor 14 n is partially positioned outside the range ⁇ 1 of the protruding portion 521 . Accordingly, electrical insulation between the connection terminals 51 p and 51 n can be maintained effectively.
- the protruding portion 521 does not overlap the connection conductor 14 n in plan view. Therefore, the terminal portion 512 n is more easily joined to the connection conductor 14 n as compared to the configuration in which, for example, the protruding portion 521 overlaps the connection conductor 14 n in plan view.
- the terminal portion 512 n can be easily joined to the connection conductor 14 n by, for example, laser welding.
- A-2 Manufacturing Method for Semiconductor Module 100
- FIG. 6 is a process flowchart exemplifying a manufacturing method of the semiconductor module 100 explained above.
- the casing portion 20 having the connector 50 installed therein is prepared.
- the insulating sheet 52 made of insulating paper is in planar form, as exemplified in FIG. 7 . That is, the protruding portion 521 of the insulating sheet 52 is in the state of being parallel to the main body portion 520 . In the state described above, the protruding portion 521 partially overlaps the connection conductor 14 n in plan view.
- the semiconductor unit 10 is accommodated in the inner space of the casing portion 20 .
- the protruding portion 521 of the insulating sheet 52 is bent with respect to the main body portion 520 , as exemplified in FIG. 8 .
- the protruding portion 521 is bent upward along the peripheral edge e 1 in such a manner as to form the predetermined angle ⁇ relative to the terminal portion 512 n of the connection terminal 51 n . Therefore, after performing the process P 3 , the protruding portion 521 does not overlap the connection conductor 14 n in plan view, as described above.
- Accommodating the semiconductor unit 10 in the casing portion 20 (P 2 ), and bending the insulating sheet 52 (P 3 ) may be performed in the reverse order. That is, after the bending of the protruding portion 521 , the semiconductor unit 10 may be accommodated in the casing portion 20 .
- the process P 3 is an example of a “first process.”
- the condition of the primer film 25 formed on the inner wall surface of the casing portion 20 is inspected.
- a worker inspects the condition of the primer film 25 visually from above in the vertical direction.
- a worker inspects whether the primer film 25 is evenly applied, and whether a problem such as breakage has occurred on the primer film 25 .
- An imaging device may be used to inspect the condition of the primer film 25 by capturing its image. Since the protruding portion 521 of the insulating sheet 52 was bent in the process P 3 , this makes it easier for a worker to inspect the condition of the primer film 25 from above in the vertical direction, as compared to the state in which the protruding portion 521 is not bent.
- the terminal portion 512 p of the connection terminal 51 p is joined to the top face of the connection conductor 14 p
- the terminal portion 512 n of the connection terminal 51 n is joined to the top face of the connection conductor 14 n .
- laser welding is preferably used to join the terminal portions 512 ( 512 p and 512 n ) respectively to the connection conductors 14 ( 14 p and 14 n ).
- the protruding portion 521 which has been bent in the process P 3 , is in a state of not overlapping the connection conductor 14 n in plan view. Therefore, it is easier for a worker to join the terminal portion 512 n to the connection conductor 14 n in the process P 4 , as compared to the state in which the protruding portion 521 is not bent.
- the sealing element 40 is filled into the inner space of the casing portion 20 with the insulating sheet 52 having been bent. Specifically, the sealing element 40 is formed by filling the inner space of the casing portion 20 with a liquid resin material (for example, epoxy resin), and then hardening the resin material by heating or by another method. In the process P 5 , the sealing element 40 is formed, with the tip portion 521 a of the protruding portion 521 kept exposed from the surface F of the sealing element 40 . Specifically, the sealing element 40 is filled in conjunction with visually inspecting of the tip portion 521 a of the protruding portion 521 by a worker.
- the process P 5 is an example of a “second process.”
- the condition of the sealing element 40 is inspected as necessary. Specifically, whether the sealing element 40 has been properly formed is inspected. For example, a worker inspects the condition of the sealing element 40 visually from above in the vertical direction. A worker inspects, for example, whether the sealing element 40 sufficiently adheres to the primer film 25 , and whether defects such as air bubbles or hollows (spaces not filled with sealing element 40 ) have appeared in the sealing element 40 . An imaging device may be used to inspect the condition of the sealing element 40 by capturing its image.
- the protruding portion 521 is formed by simply bending a portion of the insulating sheet 52 .
- the sealing element 40 is filled while a worker inspects a state of the tip portion 521 a of the protruding portion 521 protruding from the surface F of the sealing element 40 . Accordingly, the sealing element 40 can be formed while keeping the protruding portion 521 in the proper state.
- a second embodiment is described below.
- constituent elements of which functions are substantially the same as those of the first embodiment in respective embodiments described below respective detailed explanations thereof are appropriately omitted and reference signs for explaining the first embodiment are used.
- FIG. 9 is a plan view of the connector 50 according to the second embodiment.
- the insulating sheet 52 according to the second embodiment includes a protruding portion 522 instead of the protruding portion 521 according to the first embodiment.
- Configurations other than the protruding portion 522 of the second embodiment are substantially the same as those of the first embodiment.
- the semiconductor chip 12 p is an example of a “first semiconductor chip,” and the main electrode C of the semiconductor chip 12 p is an example of a “first main electrode.”
- the semiconductor chip 12 n is an example of a “second semiconductor chip,” and the main electrode E of the semiconductor chip 12 n is an example of a “second main electrode.”
- the connection terminal 51 p is an example of a “first connection terminal,” whereas the connection terminal 51 n is an example of a “second connection terminal.”
- the conductor portion 511 p is an example of a “first conductor portion,” and the terminal portion 512 p is an example of a “first terminal portion.”
- the peripheral edge Ep 1 of the conductor portion 511 p is an example of a “first peripheral edge.”
- the conductor portion 511 n is an example of a “second conductor portion.”
- the peripheral edge En 1 is an example of a “second peripheral edge.”
- the connection conductor 14 p according to the second embodiment is an example of a “first connection
- the protruding portion 522 continues from the main body portion 520 , with the protruding portion 522 and the main body portion 520 comprising a single piece.
- the protruding portion 522 according to the second embodiment is a rectangular portion of the insulating sheet 52 extending from the peripheral edge e 1 of the main body portion 520 in the Y1 direction.
- the protruding portion 522 continues from, of the main body portion 520 , a part positioned in the X1 direction relative to the reference plane R.
- the protruding portion 522 has a transverse width in the X-axis direction (the dimension of range ⁇ 2 ) narrower than the transverse width of the main body portion 520 .
- the protruding portion 522 has a transverse width narrower than half the transverse width of the main body portion 520 .
- a base end portion 522 b in FIG. 9 is, of the protruding portion 522 , a part positioned in the vicinity of the boundary (the peripheral edge e 1 ) between the protruding portion 522 and the main body portion 520 .
- a tip portion 522 a is the end of the protruding portion 522 on the opposite side to the base end portion 522 b .
- the protruding portion 522 is an example of a “first protruding portion.”
- FIG. 10 is an enlarged cross-sectional diagram of the semiconductor module 100 , illustrating the vicinity of the protruding portion 522 .
- FIG. 10 illustrates the connector 50 in cross-section taken along line c-c in FIG. 9 .
- the protruding portion 522 forms an angle ⁇ relative to the underside of the terminal portion 512 p . That is, the protruding portion 522 is inclined relative to the underside of the terminal portion 512 p , such that the tip portion 522 a is positioned in the Z2 direction relative to the base end portion 522 b in the Z-axis direction.
- the protruding portion 522 protrudes downward (for example, vertically or obliquely downward) from the underside of the terminal portion 512 p .
- the conditions of the protruding portion 522 that is, the angle ⁇ and the extension length L, are substantially the same as those described in the first embodiment.
- the protruding portion 522 protrudes downward from the terminal portion 512 p or the main body portion 520 . Therefore, as will be understood from FIG. 10 , the connection terminal 51 p is positioned between the protruding portion 522 and the surface F of the sealing element 40 . That is, in the second embodiment, the protruding portion 522 extends from the underside of the terminal portion 512 p toward the opposite side to the surface F of the sealing element 40 . Therefore, in contrast to the first embodiment in which the tip portion 521 a of the protruding portion 521 is exposed from the surface F of the sealing element 40 , the tip portion 522 a of the protruding portion 522 according to the second embodiment is positioned in the sealing element 40 .
- the protruding portion 522 is positioned between the tip portion 513 p of the terminal portion 512 p and the peripheral edge En 1 of the connection terminal 51 n in plan view. That is, both the tip portion 522 a and the base end portion 522 b of the protruding portion 522 are positioned between the tip portion 513 p and the peripheral edge En 1 in plan view.
- the protruding portion 522 does not overlap the connection conductor 14 p in plan view. That is, both the tip portion 522 a and the base end portion 522 b of the protruding portion 522 are positioned in the Y2 direction when viewed from the connection conductor 14 p.
- the protruding portion 522 is connected with the insulating portion 525 through the peripheral edge portion 526 . That is, the peripheral edge portion 526 is positioned between the protruding portion 522 and the insulating portion 525 in plan view.
- the peripheral edge portion 526 corresponds to a portion connecting the protruding portion 522 and the insulating portion 525 together (thus, the peripheral edge portion 526 is a connecting portion).
- the protruding portion 522 protrudes downward from the position (the base end portion 521 b ) away from the peripheral edge En 1 of the connection terminal 51 n by the width dimension ⁇ of the peripheral edge portion 526 in the Y1 direction.
- the range ⁇ 2 of the protruding portion 522 in the X-axis direction includes a range ⁇ p 1 of the terminal portion 512 p in the X-axis direction. That is, the range ⁇ 2 is greater than the range ⁇ p 1 , and each end of the range ⁇ p 1 is positioned within the range ⁇ 2 .
- the range ⁇ 2 of the protruding portion 522 in the X-axis direction includes a range ⁇ p 2 of the connection conductor 14 p in the X-axis direction. That is, the range ⁇ 2 is greater than the range ⁇ p 2 , and each end of the range ⁇ p 2 is positioned within the range ⁇ 2 .
- the semiconductor module 100 according to the second embodiment is manufactured by substantially the same manufacturing method as the first embodiment.
- the protruding portion 522 of the insulating sheet 52 is bent downward in the process P 3 in the second embodiment.
- the protruding portion 522 is bent downward along the peripheral edge e 1 in such a manner as to form the predetermined angle ⁇ relative to the terminal portion 512 p of the connection terminal 51 p .
- the process P 5 omits inspecting to ensure that the tip portion 521 a of the protruding portion 521 is exposed from the surface F of the sealing element 40 .
- the second embodiment explained above also achieves substantially the same effects as those achieved by the first embodiment.
- the protruding portion 522 that forms the angle ⁇ relative to the terminal portion 512 p is positioned between the tip portion 513 p of the terminal portion 512 p and the peripheral edge En 1 of the connection terminal 51 n in plan view. Accordingly, it is possible to leave a sufficient creepage distance between the connection terminal 51 n and the terminal portion 512 p as compared to the comparative example described above. Therefore, in substantially the same manner as in the first embodiment, the second embodiment can effectively maintain electrical insulation between the connection terminals 51 p and 51 n .
- the protruding portion 522 which forms the angle ⁇ relative to the terminal portion 512 p , enables a sufficient creepage distance to remain between the terminal portion 512 p and the connection terminal 51 n , the casing portion 20 is reduced in size in the Y-axis direction as compared to in the comparative example. That is, according to the second embodiment, electrical insulation between the connection terminals 51 p and 51 n can be maintained, and an increase in the size of the semiconductor module 100 is still reduced or prevented.
- FIG. 11 is a plan view of the connector 50 according to a third embodiment.
- the third embodiment is an embodiment obtained by combining the first embodiment and the second embodiment. That is, the insulating sheet 52 according to the third embodiment includes both the protruding portion 521 according to the first embodiment and the protruding portion 522 according to the second embodiment.
- the constituent elements other than the protruding portions 521 and 522 are substantially the same as those according to the first embodiment.
- the cross-section taken along line b-b in FIG. 11 corresponds to FIG. 4 .
- the cross-section taken along line c-c in FIG. 11 corresponds to FIG. 10 .
- the protruding portion 521 is positioned in the X2 direction relative to the reference plane R in plan view.
- the protruding portion 522 is positioned in the X1 direction relative to the reference plane R in plan view. That is, the protruding portions 521 and 522 according to the third embodiment are positioned on opposite sides to each other with the reference plane R sandwiched therebetween.
- the reference plane R includes the center line of the main body portion 520 of the insulating sheet 52 in its width direction. Therefore, the protruding portions 521 and 522 may be expressed as being positioned on opposite sides to each other with the center line of the main body portion 520 sandwiched therebetween.
- the protruding portion 521 protrudes upward from the topside of the terminal portion 512 n .
- the protruding portion 522 protrudes downward from the underside of the terminal portion 512 p . That is, the protruding portions 521 and 522 protrude from the main body portion 520 toward opposite sides to each other.
- the protruding portion 521 enables sufficient creepage distance to remain between the terminal portion 512 n and the connection terminal 51 p
- the protruding portion 522 enables sufficient creepage distance to remain between the terminal portion 512 p and the connection terminal 51 n . That is, the third embodiment can achieve a significant effect of maintaining electrical insulation between the connection terminals 51 p and 51 n.
- the semiconductor chip 12 n is an example of a “first semiconductor chip,” and the main electrode E of the semiconductor chip 12 n is an example of a “first main electrode” in substantially the same manner as in the first embodiment.
- the semiconductor chip 12 p is an example of a “second semiconductor chip,” and the main electrode C of the semiconductor chip 12 p is an example of a “second main electrode.”
- the conductor portion 511 n is an example of a “first conductor portion,” and the terminal portion 512 n is an example of a “first terminal portion.”
- the conductor portion 511 p is an example of a “second conductor portion,” and the terminal portion 512 p is an example of a “second terminal portion.”
- FIG. 12 is an enlarged cross-sectional diagram of the semiconductor module 100 , illustrating the vicinity of the protruding portion 521 according to a fourth embodiment.
- the protruding portion 521 according to the fourth embodiment includes a first part 521 c and a second part 521 d .
- the first part 521 c and the second part 521 d are continuous with each other.
- the first part 521 c is a part of the protruding portion 521 positioned closer to the base end portion 521 b .
- the second part 521 d is a part of the protruding portion 521 positioned closer to the tip portion 521 a . That is, the tip portion 521 a is a peripheral edge of the second part 521 d positioned on the opposite side to the first part 521 c.
- the first part 521 c protrudes upward at an angle ⁇ formed relative to the terminal portion 512 n .
- FIG. 12 illustrates an example in which the angle ⁇ is approximately 90°.
- the second part 521 d extends in the Y2 direction from the peripheral edge of the first part 521 c on the opposite side to the base end portion 521 b . That is, the second part 521 d extends in a direction parallel to the main body portion 520 of the insulating sheet 52 .
- the protruding portion 521 according to the fourth embodiment has a shape such that the protruding portion 521 is bent from the base end portion 521 b and is then bent back toward the side wall 22 (in the Y2 direction) of the casing portion 20 .
- the tip portion 521 a of the protruding portion 521 penetrates into (i.e., partially penetrates) the inner wall surface of the side wall 22 of the casing portion 20 .
- the tip portion 521 a is accommodated in a groove portion 29 formed on the inner wall surface of the side wall 22 .
- the groove portion 29 is a hole with a bottom extending linearly in the X-axis direction across the entire width of the protruding portion 521 .
- the tip portion 521 a is inserted into the groove portion 29 , so that the second part 521 d of the protruding portion 521 is fixed to the casing portion 20 .
- the protruding portion 521 of the insulating sheet 52 is bent toward the side wall 22 , and the tip portion 521 a is inserted (i.e., fitted) into the groove portion 29 .
- the tip portion 521 a may be joined to the groove portion 29 by using, for example, an adhesive.
- the fourth embodiment also achieves substantially the same effects as those achieved by the first embodiment.
- the tip portion 521 a of the protruding portion 521 penetrates into the inner wall surface of the side wall 22 of the casing portion 20 , so that the shape of the protruding portion 521 can be maintained stably, for example, in the manufacturing process of the semiconductor module 100 (for example, in the process P 5 of forming the sealing element 40 ).
- FIG. 12 exemplifies the protruding portion 521 extending upward from the terminal portion 512 n .
- substantially the same configuration is also employed for the protruding portion 522 extending downward from the terminal portion 512 p .
- the protruding portion 522 in FIG. 13 is formed into such a shape that a first part 522 c positioned closer to a base end portion 522 b is continuous with a second part 522 d positioned closer to a tip portion 522 a .
- the first part 522 c protrudes downward at an angle ⁇ ( ⁇ 90°) formed relative to the terminal portion 512 p .
- the second part 522 d extends in the Y2 direction from the peripheral edge of the first part 522 c on the opposite side to the base end portion 522 b . That is, the protruding portion 522 in FIG. 13 has a shape such that the protruding portion 522 is bent from the base end portion 522 b and is then bent back toward the side wall 22 (in the Y2 direction) of the casing portion 20 .
- the tip portion 522 a of the protruding portion 522 penetrates into the inner wall surface of the side wall 22 of the casing portion 20 .
- the tip portion 522 a is accommodated in a groove portion 29 formed on the inner wall surface of the side wall 22 in substantially the same manner as the tip portion 521 a according to the fourth embodiment.
- each of the embodiments described above the configuration is exemplified in which the insulating portion 525 is connected with the protruding portion 521 through the peripheral edge portion 526 .
- a configuration is also assumed in which the protruding portion 521 is continuous with the insulating portion 525 . That is, the peripheral edge portion 526 in each of the embodiments described above may be omitted.
- each of the embodiments described above, in which the peripheral edge portion 526 is interposed between the insulating portion 525 and the protruding portion 521 has the advantage that it is easier to enable sufficient creepage distance to remain between the terminal portion 512 n and the connection terminal 51 p , as compared to the configuration in FIG.
- the focus is on the protruding portion 521 .
- substantially the same configuration is also employed for the protruding portion 522 . That is, the protruding portion 522 may be continuous with the insulating portion 525 .
- substantially the same configuration is also employed for the protruding portion 522 .
- the configuration in which the protruding portion 521 is continuous with the main body portion 520 , with the protruding portion 521 and the main body portion 520 comprising a single piece has an advantage that the protruding portion 521 can be easily formed merely by deforming (for example, bending) the insulating sheet 52 , as compared to the configuration in which the main body portion 520 and the protruding portion 521 , which are separate pieces from each other, are connected together.
- the insulating sheet 52 is made of insulating paper.
- the material of the insulating sheet 52 is not limited to the example described above.
- a resin film made of a resin material such as polyimide may be used as the insulating sheet 52 .
- the insulating sheet 52 can be easily deformed (for example, bent) as compared to a configuration in which the insulating sheet 52 is made of a resin film. Therefore, each of the embodiments described above has an advantage that the insulating sheet 52 is easy to handle. Additionally, each of the embodiments described above has an advantage that breakage, such as cracking in the insulating sheet 52 , is less likely to occur, as compared to a configuration in which, for example, the insulating sheet 52 is made of any type of ceramic.
- the configuration is exemplified in which the sealing element 40 is filled into the inner space of the casing portion 20 .
- the sealing element 40 may be omitted.
- the creepage distance between the terminal portion 512 n and the connection terminal 51 p particularly matters when the insulating sheet 52 separates from the sealing element 40 . Therefore, the configuration in which the protruding portion 521 or the protruding portion 522 is installed is effective, especially in the embodiment in which the casing portion 20 is filled with the sealing element 40 .
- a configuration is exemplified in which the protruding portion 521 does not overlap the connection conductor 14 n in plan view.
- a configuration is also assumed in which the protruding portion 521 partially or entirely overlaps the connection conductor 14 n in plan view.
- the protruding portion 522 may also partially or entirely overlap the connection conductor 14 p in plan view.
- a configuration is exemplified in which the semiconductor unit 10 is accommodated in the space surrounded by the casing portion 20 and the base portion 30 at the bottom.
- the base portion 30 is not an essential element for the semiconductor module 100 .
- a configuration is also assumed in which the base portion 30 is not used.
- the insulating substrate 112 of the layered substrate 11 and the casing portion 20 are joined to each other, so that the semiconductor unit 10 is supported by the casing portion 20 .
- the edge portion of the topside of the insulating substrate 112 is joined to the underside of the casing portion 20 by, for example, using an adhesive.
- the insulating substrate 112 and the metal layer 113 are positioned in the Z2 direction relative to the underside of the casing portion 20 . That is, the semiconductor unit 10 is partially positioned outside the space surrounded by the casing portion 20 .
- the semiconductor unit 10 is surrounded in its entirety by the casing portion 20 .
- the casing portion 20 is comprehensively expressed as an element that surrounds the semiconductor chips 12 , regardless of whether the casing portion 20 surrounds the semiconductor unit 10 entirely or partially. It is to be noted that the side of the insulating substrate 112 may be joined to the inner wall surface of the casing portion 20 by, for example, using an adhesive.
- the semiconductor chips 12 include an RC-IGBT.
- the configuration of the semiconductor chips 12 is not limited to the above example.
- the semiconductor chips 12 include an IGBT or a MOSFET.
- the main electrode C is one of a source electrode and a drain electrode
- the main electrode E is the other electrode.
- the number of semiconductor chips 12 included in the semiconductor module 100 is not limited to two.
- the semiconductor module 100 includes one semiconductor chip 12 , or three or more semiconductor chips 12 .
- primer film 26 . . . connection terminal, 27 . . . control terminal, 28 . . . wire, 29 . . . groove portion, 30 . . . base portion, 40 . . . sealing element, 50 . . . connector, 51 ( 51 p , 51 n ) . . . connection terminal, 52 . . . insulating sheet, 511 ( 511 p , 511 n ) . . . conductor portion, 512 ( 512 p , 512 n ) . . . terminal portion, 513 ( 513 p , 513 n ) . . . tip portion, 520 . . .
- main body portion 521 , 522 . . . protruding portion, 521 a , 522 b . . . tip portion, 521 b , 522 b . . . base end portion, 521 c , 522 c . . . first part, 521 d , 522 d . . . second part, 525 . . . insulating portion, 526 . . . peripheral edge portion.
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- Engineering & Computer Science (AREA)
- Structures Or Materials For Encapsulating Or Coating Semiconductor Devices Or Solid State Devices (AREA)
- Physics & Mathematics (AREA)
- Condensed Matter Physics & Semiconductors (AREA)
- General Physics & Mathematics (AREA)
- Computer Hardware Design (AREA)
- Microelectronics & Electronic Packaging (AREA)
- Power Engineering (AREA)
- Manufacturing & Machinery (AREA)
Abstract
Description
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| Application Number | Priority Date | Filing Date | Title |
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| JP2021-114035 | 2021-07-09 | ||
| JP2021114035A JP7749955B2 (en) | 2021-07-09 | 2021-07-09 | Semiconductor module and manufacturing method thereof |
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| US20230008663A1 US20230008663A1 (en) | 2023-01-12 |
| US12237237B2 true US12237237B2 (en) | 2025-02-25 |
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| CN117776657A (en) * | 2023-12-26 | 2024-03-29 | 重庆云潼科技有限公司 | Preparation method and application of high-power device packaging materials |
| CN117637500A (en) * | 2024-01-25 | 2024-03-01 | 广东芯聚能半导体有限公司 | Injection molding method for laminated terminals of power semiconductor modules |
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| JP2004214450A (en) | 2003-01-06 | 2004-07-29 | Hitachi Metals Ltd | Wiring board and method of manufacturing the same |
| JP2006210500A (en) | 2005-01-26 | 2006-08-10 | Nippon Inter Electronics Corp | Power semiconductor device |
| JP2011077464A (en) | 2009-10-02 | 2011-04-14 | Hitachi Automotive Systems Ltd | Semiconductor device, power semiconductor module, and power converter equipped with power semiconductor module |
| WO2015145752A1 (en) | 2014-03-28 | 2015-10-01 | 三菱電機株式会社 | Semiconductor module and drive unit equipped with semiconductor module |
| US20160071778A1 (en) * | 2014-09-10 | 2016-03-10 | Mitsubishi Electric Corporation | Semiconductor Device and Manufacturing Method Thereof |
| US20160344301A1 (en) * | 2014-08-26 | 2016-11-24 | Fuji Electric Co., Ltd. | Three-level power converter |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2725952B2 (en) * | 1992-06-30 | 1998-03-11 | 三菱電機株式会社 | Semiconductor power module |
| JP5097797B2 (en) | 2010-05-31 | 2012-12-12 | 日立オートモティブシステムズ株式会社 | Power conversion apparatus and moving body equipped with the same |
| JP2018026885A (en) | 2014-12-26 | 2018-02-15 | 株式会社村田製作所 | Capacitor module and power conversion system |
| JP6852011B2 (en) | 2018-03-21 | 2021-03-31 | 株式会社東芝 | Semiconductor device |
| JP7034043B2 (en) | 2018-09-28 | 2022-03-11 | 京セラ株式会社 | Power module and electrical equipment with power module |
| JP7284566B2 (en) | 2018-10-29 | 2023-05-31 | ローム株式会社 | semiconductor equipment |
-
2021
- 2021-07-09 JP JP2021114035A patent/JP7749955B2/en active Active
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- 2022-05-24 US US17/752,073 patent/US12237237B2/en active Active
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Patent Citations (8)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2004214450A (en) | 2003-01-06 | 2004-07-29 | Hitachi Metals Ltd | Wiring board and method of manufacturing the same |
| JP2006210500A (en) | 2005-01-26 | 2006-08-10 | Nippon Inter Electronics Corp | Power semiconductor device |
| JP2011077464A (en) | 2009-10-02 | 2011-04-14 | Hitachi Automotive Systems Ltd | Semiconductor device, power semiconductor module, and power converter equipped with power semiconductor module |
| US20120300522A1 (en) | 2009-10-02 | 2012-11-29 | Hitachi Automotive Systems, Ltd. | Semiconductor Device, Power Semiconductor Module and Power Conversion Device Equipped with Power Semiconductor Module |
| WO2015145752A1 (en) | 2014-03-28 | 2015-10-01 | 三菱電機株式会社 | Semiconductor module and drive unit equipped with semiconductor module |
| US20160351480A1 (en) | 2014-03-28 | 2016-12-01 | Mitsubishi Electric Corporation | Semiconductor module and drive device equipped with semiconductor module |
| US20160344301A1 (en) * | 2014-08-26 | 2016-11-24 | Fuji Electric Co., Ltd. | Three-level power converter |
| US20160071778A1 (en) * | 2014-09-10 | 2016-03-10 | Mitsubishi Electric Corporation | Semiconductor Device and Manufacturing Method Thereof |
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| Publication number | Publication date |
|---|---|
| JP7749955B2 (en) | 2025-10-07 |
| US20230008663A1 (en) | 2023-01-12 |
| CN115602641A (en) | 2023-01-13 |
| JP2023010131A (en) | 2023-01-20 |
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